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Optimization under uncertainty of a biomass-integrated renewable energy microgrid with energy storage

机译:具有储能的生物质集成可再生能源微电网在不确定性下的优化

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Deterministic constrained optimization and stochastic optimization approaches were used to evaluate uncertainties in biomass-integrated microgrids supplying both electricity and heat. An economic linear programming model with a sliding time window was developed to assess design and scheduling of biomass combined heat and power (BCHP) based microgrid systems. Other available technologies considered within the microgrid were small-scale wind turbines, photovoltaic modules (PV), producer gas storage, battery storage, thermal energy storage and heat-only boilers. As an illustrative example, a case study was examined for a conceptual utility grid-connected microgrid application in Davis, California. The results show that for the assumptions used, a BCHP/PV with battery storage combination is the most cost effective design based on the assumed energy load profile, local climate data, utility tariff structure, and technical and financial performance of the various components of the microgrid. Monte Carlo simulation was used to evaluate uncertainties in weather and economic assumptions, generating a probability density function for the cost of energy. (C) 2018 Elsevier Ltd. All rights reserved.
机译:使用确定性约束优化和随机优化方法来评估供热和供热的生物质集成微电网的不确定性。开发了具有滑动时间窗口的经济线性规划模型,以评估基于生物质热电联产(BCHP)的微电网系统的设计和调度。在微电网中考虑的其他可用技术是小型风力涡轮机,光伏模块(PV),生产者气体存储,电池存储,热能存储和纯热锅炉。作为一个说明性的例子,在加利福尼亚州戴维斯市研究了一个概念性的公用电网并网微电网应用案例研究。结果表明,对于所使用的假设,基于电池组的各个组成部分的假定能量负荷曲线,当地气候数据,公用事业收费结构以及技术和财务绩效,结合电池存储的BCHP / PV是最具成本效益的设计。微电网。蒙特卡洛模拟用于评估天气和经济假设中的不确定性,从而生成能源成本的概率密度函数。 (C)2018 Elsevier Ltd.保留所有权利。

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